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聚合物材料在热疲劳载荷作用下损伤与失效的数值模拟

Numerical Simulations for Damage and Failure of a Polymer Material Subjected to Thermal Fatigue Loading.

作者信息

Koyanagi Jun, Sugiyama Takumu, Fikry M J Mohammad, Li Yutong, Tsukada Takuhei

机构信息

Department of Materials Science and Technology, Faculty of Advanced Engineering, Tokyo University of Science, 6-3-1 Niijuku, Katsushika-ku, Tokyo 125-8585, Japan.

Department of Materials Science and Technology, Graduate School of Advanced Engineering, Tokyo University of Science, 6-3-1 Niijuku, Katsushika-ku, Tokyo 125-8585, Japan.

出版信息

Polymers (Basel). 2025 Apr 23;17(9):1153. doi: 10.3390/polym17091153.

Abstract

This study proposes a novel numerical approach to simulate damage accumulation and failure in polymer materials under thermal fatigue, using an entropy-based damage criterion. Unlike the many experimental studies in this area, few numerical simulations exist due to the complexity of modeling thermal fatigue. In our method, thermal and mechanical stresses arising from thermal expansion mismatches and temperature gradients are modeled through a coupled simulation approach. A viscoelastic constitutive equation is implemented in ABAQUS via a user-defined subroutine to capture damage progression. The method includes surface and internal thermal conduction, thermal deformation, and time-temperature superposition using reduced viscosity, enabling accurate simulation under varying thermal conditions. The results show that localized thermal stresses induced by temperature gradients lead to progressive damage and failure. This study demonstrates the first successful numerical simulation of thermal fatigue-induced damage in polymer materials. The proposed framework reduces the need for extensive experiments and offers insights into residual stress prediction and durability evaluation, contributing to polymer design and application in high-performance environments.

摘要

本研究提出了一种新颖的数值方法,利用基于熵的损伤准则来模拟聚合物材料在热疲劳下的损伤累积和失效。与该领域众多实验研究不同,由于热疲劳建模的复杂性,数值模拟较少。在我们的方法中,通过耦合模拟方法对由热膨胀失配和温度梯度引起的热应力和机械应力进行建模。通过用户定义子程序在ABAQUS中实现粘弹性本构方程,以捕捉损伤进展。该方法包括表面和内部热传导、热变形以及使用折合粘度的时间-温度叠加,能够在不同热条件下进行精确模拟。结果表明,温度梯度引起的局部热应力会导致渐进性损伤和失效。本研究展示了首次成功对聚合物材料热疲劳诱导损伤进行数值模拟。所提出的框架减少了大量实验的需求,并为残余应力预测和耐久性评估提供了见解,有助于聚合物在高性能环境中的设计和应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ac8/12073653/25d26e1fba05/polymers-17-01153-g001.jpg

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